<?xml version="1.0" encoding="UTF-8"?><?xml-stylesheet type="text/xsl" href="static/style.xsl"?><OAI-PMH xmlns="http://www.openarchives.org/OAI/2.0/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/ http://www.openarchives.org/OAI/2.0/OAI-PMH.xsd"><responseDate>2026-09-20T03:09:36Z</responseDate><request verb="GetRecord" identifier="oai:dspace.mit.edu:1721.1/98707" metadataPrefix="dim">https://dspace.mit.edu/server/oai/request</request><GetRecord><record><header><identifier>oai:dspace.mit.edu:1721.1/98707</identifier><datestamp>2026-06-16T18:55:36Z</datestamp><setSpec>com_1721.1_7582</setSpec><setSpec>com_1721.1_7581</setSpec><setSpec>col_1721.1_131022</setSpec></header><metadata><dim:dim xmlns:dim="http://www.dspace.org/xmlns/dspace/dim" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:doc="http://www.lyncode.com/xoai" xsi:schemaLocation="http://www.dspace.org/xmlns/dspace/dim http://www.dspace.org/schema/dim.xsd">
   <dim:field mdschema="dc" element="contributor" qualifier="advisor" lang="en_US">Yang Shao-Horn and Paula T. Hammond.</dim:field>
   <dim:field mdschema="dc" element="contributor" qualifier="author" lang="en_US">Harding, Jonathon R. (Jonathon Robert)</dim:field>
   <dim:field mdschema="dc" element="contributor" qualifier="other" lang="en_US">Massachusetts Institute of Technology. Department of Chemical Engineering.</dim:field>
   <dim:field mdschema="dc" element="contributor" qualifier="department">Massachusetts Institute of Technology. Department of Chemical Engineering</dim:field>
   <dim:field mdschema="dc" element="date" qualifier="accessioned">2015-09-17T19:06:25Z</dim:field>
   <dim:field mdschema="dc" element="date" qualifier="available">2015-09-17T19:06:25Z</dim:field>
   <dim:field mdschema="dc" element="date" qualifier="copyright" lang="en_US">2015</dim:field>
   <dim:field mdschema="dc" element="date" qualifier="issued" lang="en_US">2015</dim:field>
   <dim:field mdschema="dc" element="identifier" qualifier="uri">http://hdl.handle.net/1721.1/98707</dim:field>
   <dim:field mdschema="dc" element="identifier" qualifier="oclc" lang="en_US">920690305</dim:field>
   <dim:field mdschema="dc" element="description" lang="en_US">Thesis: Ph. D., Massachusetts Institute of Technology, Department of Chemical Engineering, 2015.</dim:field>
   <dim:field mdschema="dc" element="description" lang="en_US">Cataloged from PDF version of thesis.</dim:field>
   <dim:field mdschema="dc" element="description" lang="en_US">Includes bibliographical references (pages 161-177).</dim:field>
   <dim:field mdschema="dc" element="description" qualifier="abstract" lang="en_US">The demand for clean energy in portable applications is driving the development of high specific energy batteries, which will enable automobiles powered by electricity derived from renewable energy sources such as solar and wind. Lithium-air batteries are a promising avenue for advancing the energy storage capabilities beyond that of current lithium-ion technology. These batteries face a number of challenges which prevent their practical implementation in devices. This thesis explores possible mitigations for two of these challenges: (1) the high charging overpotential and (2) the volatility and poor oxygen conduction of liquid electrolytes in Li-air batteries. In the first part, Vulcan carbon-based electrodes were developed where chemically-synthesized lithium peroxide was included during the electrode preparation process. Variants of these electrodes which further included noble metal catalyst nanoparticles (Au, Pt, and Ru) were also prepared, and Pt and Ru were both demonstrated to begin oxidizing Li₂O₂ 500 mV lower than required for carbon-only or Au-containing electrodes. Using a differential electrochemical mass spectrometer (DEMS) designed and built over the course of this thesis, we showed that Ru-containing electrodes produce oxygen throughout the oxidation of Li₂O₂, while Pt generated both carbon dioxide and oxygen, indicative of electrolyte decomposition. These results served as a foundation for future efforts to develop solid catalysts for the oxidation of Li₂O₂ in Li-air batteries. In the second part, Li-O₂ devices using a solid electrolyte based on poly(ethylene oxide) (PEO) were developed. The discharge performance at room temperature and 60 °C was characterized, with dramatically higher discharge capacity and rate capability achievable at the elevated temperature. DEMS was used to show that the gases evolved during charging in argon were sensitive to the temperature of charging, with additional carbon dioxide observed at and above 50 °C. Finally, the autoxidation of PEO at 60 °C in Li-O₂ environments was studied, where NMR and DEMS measurements showed that the rate of PEO autoxidation increases with increasing applied potential, and that this reaction has a significant impact after only one charging cycle, identifying another condition that must be met for stable and practical Li-air batteries.</dim:field>
   <dim:field mdschema="dc" element="description" qualifier="statementofresponsibility" lang="en_US">by Jonathon R. Harding.</dim:field>
   <dim:field mdschema="dc" element="description" qualifier="degree" lang="en_US">Ph.D.</dim:field>
   <dim:field mdschema="dc" element="format" qualifier="extent" lang="en_US">228 pages</dim:field>
   <dim:field mdschema="dc" element="language" qualifier="iso" lang="en_US">eng</dim:field>
   <dim:field mdschema="dc" element="publisher" lang="en_US">Massachusetts Institute of Technology</dim:field>
   <dim:field mdschema="dc" element="rights" lang="en_US">M.I.T. theses are protected by copyright. They may be viewed from this source for any purpose, but reproduction or distribution in any format is prohibited without written permission. See provided URL for inquiries about permission.</dim:field>
   <dim:field mdschema="dc" element="rights" qualifier="uri" lang="en_US">http://dspace.mit.edu/handle/1721.1/7582</dim:field>
   <dim:field mdschema="dc" element="subject" lang="en_US">Chemical Engineering.</dim:field>
   <dim:field mdschema="dc" element="title" lang="en_US">Investigation of oxidation in nonaqueous lithium-air batteries</dim:field>
   <dim:field mdschema="dc" element="title" qualifier="alternative" lang="en_US">Investigation of oxidation in non-aqueous lithium-oxygen batteries</dim:field>
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   	&lt;Title>Investigation of oxidation in nonaqueous lithium-air batteries&lt;/Title>
   	&lt;Subtitle>Investigation of oxidation in non-aqueous lithium-oxygen batteries&lt;/Subtitle>
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   	&lt;PublicationDate>2015&lt;/PublicationDate>
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        	&lt;DisplayName>Harding, Jonathon R. (Jonathon Robert)&lt;/DisplayName>
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    &lt;Keyword>Chemical Engineering.&lt;/Keyword>
   	&lt;Abstract>The demand for clean energy in portable applications is driving the development of high specific energy batteries, which will enable automobiles powered by electricity derived from renewable energy sources such as solar and wind. Lithium-air batteries are a promising avenue for advancing the energy storage capabilities beyond that of current lithium-ion technology. These batteries face a number of challenges which prevent their practical implementation in devices. This thesis explores possible mitigations for two of these challenges: (1) the high charging overpotential and (2) the volatility and poor oxygen conduction of liquid electrolytes in Li-air batteries. In the first part, Vulcan carbon-based electrodes were developed where chemically-synthesized lithium peroxide was included during the electrode preparation process. Variants of these electrodes which further included noble metal catalyst nanoparticles (Au, Pt, and Ru) were also prepared, and Pt and Ru were both demonstrated to begin oxidizing Li₂O₂ 500 mV lower than required for carbon-only or Au-containing electrodes. Using a differential electrochemical mass spectrometer (DEMS) designed and built over the course of this thesis, we showed that Ru-containing electrodes produce oxygen throughout the oxidation of Li₂O₂, while Pt generated both carbon dioxide and oxygen, indicative of electrolyte decomposition. These results served as a foundation for future efforts to develop solid catalysts for the oxidation of Li₂O₂ in Li-air batteries. In the second part, Li-O₂ devices using a solid electrolyte based on poly(ethylene oxide) (PEO) were developed. The discharge performance at room temperature and 60 °C was characterized, with dramatically higher discharge capacity and rate capability achievable at the elevated temperature. DEMS was used to show that the gases evolved during charging in argon were sensitive to the temperature of charging, with additional carbon dioxide observed at and above 50 °C. Finally, the autoxidation of PEO at 60 °C in Li-O₂ environments was studied, where NMR and DEMS measurements showed that the rate of PEO autoxidation increases with increasing applied potential, and that this reaction has a significant impact after only one charging cycle, identifying another condition that must be met for stable and practical Li-air batteries.&lt;/Abstract>
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